A classical battery converts chemical energy into a persistent voltage bias that can power electronic circuits. Similarly, a phase battery is a quantum device that provides a persistent phase bias to the wave function of a quantum circuit. It represents a key element for quantum technologies based on phase coherence. Here we demonstrate a phase battery in a hybrid superconducting circuit. It consists of an n-doped InAs nanowire with unpaired-spin surface states, that is proximitized by Al superconducting leads. We find that the ferromagnetic polarization of the unpaired-spin states is efficiently converted into a persistent phase bias ?0 across the wire, leading to the anomalous Josephson effect1,2. We apply an external in-plane magnetic field and, thereby, achieve continuous tuning of ?0. Hence, we can charge and discharge the quantum phase battery. The observed symmetries of the anomalous Josephson effect in the vectorial magnetic field are in agreement with our theoretical model. Our results demonstrate how the combined action of spin-orbit coupling and exchange interaction induces a strong coupling between charge, spin and superconducting phase, able to break the phase rigidity of the system.

A Josephson phase battery

Strambini E
;
Citro R;Braggio A;Rocci M;Ligato N;Zannier V;Sorba L;Giazotto F
2020

Abstract

A classical battery converts chemical energy into a persistent voltage bias that can power electronic circuits. Similarly, a phase battery is a quantum device that provides a persistent phase bias to the wave function of a quantum circuit. It represents a key element for quantum technologies based on phase coherence. Here we demonstrate a phase battery in a hybrid superconducting circuit. It consists of an n-doped InAs nanowire with unpaired-spin surface states, that is proximitized by Al superconducting leads. We find that the ferromagnetic polarization of the unpaired-spin states is efficiently converted into a persistent phase bias ?0 across the wire, leading to the anomalous Josephson effect1,2. We apply an external in-plane magnetic field and, thereby, achieve continuous tuning of ?0. Hence, we can charge and discharge the quantum phase battery. The observed symmetries of the anomalous Josephson effect in the vectorial magnetic field are in agreement with our theoretical model. Our results demonstrate how the combined action of spin-orbit coupling and exchange interaction induces a strong coupling between charge, spin and superconducting phase, able to break the phase rigidity of the system.
2020
Istituto Nanoscienze - NANO
Inglese
15
8
656
660
5
http://www.scopus.com/inward/record.url?eid=2-s2.0-85089163778&partnerID=q2rCbXpz
Esperti anonimi
---
Internazionale
14
info:eu-repo/semantics/article
262
Strambini, E; Iorio, A; Durante, O; Citro, R; Sanzfernandez, C; Guarcello, C; Tokatly, Iv; Braggio, A; Rocci, M; Ligato, N; Zannier, V; Sorba, L; Berg...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
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   QuantERA ERA-NET Cofund in Quantum Technologies
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   Horizon 2020 Framework Programme
   731473

   Cooperation between Superconductivity and Magnetism in Mesoscopic systems: towards Majorana states
   SuperMag
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   660532

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   COMANCHE
   European Commission
   SEVENTH FRAMEWORK PROGRAMME
   615187

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   SUPERTED
   European Commission
   Horizon 2020 Framework Programme
   800923

   Bilateral Project CNR-CONICET
   CNR-CONICET

   International exchanges between the United Kingdom and Italy
   the Italian Ministry of Foreign Affairs and International Cooperation; and the Royal Society
   IEC R2192166
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/379438
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